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1.
葡萄糖转运蛋白4(glucose transporter 4,GLUT4)参与胰岛素敏感的脂肪细胞和肌肉细胞中的葡萄糖转运,对机体葡萄糖代谢至关重要。磷脂酰肌醇作为各种蛋白质的定位信号,参与调控细胞生长和新陈代谢,在胰岛素信号转导过程中起着关键作用。在过去的几十年里,关于磷脂酰肌醇信号调控GLUT4囊泡转运方面已有了很大的进展。该文总结了磷脂酰肌醇在GLUT4囊泡转运中的调控作用。  相似文献   

2.
囊泡启动是细胞调节性分泌中非常关键的一个步骤,囊泡启动后才具备与膜融合的能力.囊泡的启动过程需要SNARE复合体的形成和许多其它蛋白如Muncl3、RIM、CAPS等的参与,但不同类型的分泌囊泡其关键的启动因子并不相同.本文主要从分泌囊泡的启动过程和不同囊泡所特异的启动因子着手,综述了囊泡转运过程中启动步骤的最新研究进展.  相似文献   

3.
细胞外囊泡(extracellular vesicle,EV)是由细胞释放到细胞外微环境的膜性囊泡,携带母细胞来源分子,参与机体的生理和病理活动过程,鉴定其组成并研究其功能已成为研究热点。目前,对不同物种、不同组织和不同细胞来源的细胞外囊泡组份的研究,获得了大量的蛋白质、核酸、脂类和其他分子数据。为更好地使用这些数据,已有不同的研究机构建立了相应的数据库,为该领域的研究提供了便利。ExoCarta、Vesiclepedia和Evpedia数据库是目前收录数据比较全面的、最具影响力的细胞外囊泡数据库。本文将介绍这3个数据库的特点和应用,为研究者选择使用胞外囊泡数据库提供参考。  相似文献   

4.
PC12活细胞中单个分泌囊泡的动态成像   总被引:5,自引:0,他引:5  
囊泡的荧光标记和动态显微成像观察是研究蛋白质和膜转运机制的重要手段。采用EGFP hpNPY融合荧光蛋白标记PC12细胞的致密大囊泡 ,用全内反射和宽场荧光显微镜对PC12细胞进行成像研究。结果发现 :普通的宽场荧光成像模糊不清 ,难以观察到单个囊泡 ;而全内反射荧光成像则可清晰地分辨出呈现为离散荧光点的单个囊泡 ;并且进一步利用全内反射荧光成像直接观察到了活的PC12细胞中单个囊泡的转运、锚定及与细胞膜的融合过程 ,证实了囊泡的锚定过程是可逆的。  相似文献   

5.
肖婷  赵桂华  尹昆 《微生物学通报》2016,43(11):2488-2494
嗜肺军团菌通过其特有的Dot/Icm type-IVB分泌系统向宿主胞内分泌多种效应因子,有效俘获了宿主胞内参与囊泡转运的重要蛋白,从而"绑架"了宿主细胞的囊泡运输过程,达到逃避宿主清除机制并大量增殖的目的。这些效应因子包括Sid M、Lid A、Lep B、Ank X、Lem3、Sid D、Ral F、Vip D等,通过对这些效应因子的鉴定、功能试验和结构生物学研究,逐渐揭示了它们较为完整深入的分子作用机制。本文综述了目前已知的参与调控宿主囊泡转运过程的重要效应因子及其空间结构和分子机制,有助于综合了解这种复杂的病原微生物与宿主相互作用的过程。  相似文献   

6.
钙离子依赖的分泌激活蛋白(Ca^2+-dependent activator protein for secretion,CAPS)是一类在进化中高度保守的促分泌蛋白,它存在两种异构体:CAPS1和CAPS2,两者在不同发育阶段的表达水平及组织中的分布上均有所差异。以往的研究认为CAPS1作为磷脂酰肌醇二磷酸(phosphatidylinositol diphosphate,PIP2)连接蛋白参与钙离子调节的大的致密核心囊泡(large dense-core vescicle,LDCV)与膜融合过程。最近的研究表明,CAPS1还作用于LDCV与膜融合的上游阶段,在分泌性囊泡的形成以及维持其稳定性方面发挥作用。  相似文献   

7.
细胞外囊泡(extracellular vesicle,EV)是由细胞释放到细胞外微环境的膜性囊泡,携带母细胞来源分子,参与机体的生理和病理活动过程,鉴定其组成并研究其功能已成为研究热点。目前,对不同物种、不同组织和不同细胞来源的细胞外囊泡组份的研究,获得了大量的蛋白质、核酸、脂类和其他分子数据。为更好地使用这些数据,已有不同的研究机构建立了相应的数据库,为该领域的研究提供了便利。ExoCarta、Vesiclepedia和Evpedia数据库是目前收录数据比较全面的、最具影响力的细胞外囊泡数据库。本文将介绍这3个数据库的特点和应用,为研究者选择使用胞外囊泡数据库提供参考。  相似文献   

8.
钙依赖的分泌激活蛋白(CAPS)是一种可以重组通透化神经内分泌细胞的分泌的蛋白.一般认为CAPS是选择性的在致密核心大囊泡的分泌过程中起作用,而不是在清亮囊泡的分泌过程中起作用.但是至今,我们并没有完全了解CAPS的作用机制,并且CAPS中各个预测的功能结构域的作用也不完全清楚.本文将对CAPS的研究进展做详尽的综述.  相似文献   

9.
由细胞释放到细胞外环境中的来源于内体和细胞膜的多样化的膜性囊泡,统称为细胞外囊泡。这些细胞外囊泡作为细胞间转运膜和可溶性蛋白、脂质、RNA的载体,代表一种重要的细胞间通讯方式。虽然很多报道证明,多种细胞释放细胞外囊泡,并且具有一定的生理意义,但是我们目前缺乏对细胞外囊泡分子机制的深入理解,在细胞外囊泡研究的方法学以及人为调控细胞外囊泡的释放等方面也存在局限性,因此使得我们对它们在体内的生理学功能和细胞外囊泡作为疾病靶标的转化医学的研究进程缓慢。在这篇综述中,该文主要从细胞外囊泡的分类、分子细胞生物学研究、生理及病生理功能、细胞外囊泡的研究方法几个方面回顾当前细胞外囊泡领域的研究进展。  相似文献   

10.
神经递质释放对维持生物体正常的生命活动有着重要的意义,它是由囊泡运输介导完成的.神经元细胞中囊泡运输涉及许多蛋白质间的相互作用,共同调控这一复杂的过程,可溶性小分子蛋白Complexin(Cpx)在这一过程中起着重要的作用,它同时具有抑制囊泡自发发放和促进囊泡诱发发放的功能.本文综合国内外近20年的研究,着重介绍了Cpx蛋白各部分结构域的功能,及其与一些囊泡分泌相关蛋白,如SNARE复合体、Synaptotagmin(Syt),间的相互作用机制及其最新进展.  相似文献   

11.
Li CH  Bai L  Li DD  Xia S  Xu T 《Cell research》2004,14(6):480-486
Glucose transporter 4 (GLUT4) is responsible for insulin-stimulated glucose transporting into the insulin-sensitive fat and muscle cells. The dynamics of GLUT4 storage vesicles (GSVs) remains to be explored and it is unclear how GSVs are arranged based on their mobility. We examined this issue in 3T3-L1 cells via investigating the three-dimensional mobility of single GSV labeled with EGFP-fused GLUT4. A thin layer of cytosol right adjacent to the plasma membrane was illuminated and successively imaged at 5 Hz under a total internal reflection fluorescence microscope with a penetration depth of 136 nm. Employing single particle tracking, the three-dimensional subpixel displacement of single GSV was tracked at a spatial precision of 22 nm. Both the mean square displacement and the diffusion coefficient were calculated for each vesicle. Tracking results revealed that vesicles moved as if restricted within a cage that has a mean radius of 160 nm, suggesting the presence of some intracellular tethering matrix. By constructing the histogram of the diffusion coefficients of GSVs, we observed a smooth distribution instead of the existence of distinct groups. The result indicates that GSVs are dynamically retained in a continuous and wide range of mobility rather than into separate classes.  相似文献   

12.
Insulin signaling augments glucose transport by regulating glucose transporter 4 (GLUT4) trafficking from specialized intracellular compartments, termed GLUT4 storage vesicles (GSVs), to the plasma membrane. Proteomic analysis of GSVs by mass spectrometry revealed enrichment of 59 proteins in these vesicles. We measured reduced abundance of 23 of these proteins following insulin stimulation and assigned these as high confidence GSV proteins. These included established GSV proteins such as GLUT4 and insulin-responsive aminopeptidase, as well as six proteins not previously reported to be localized to GSVs. Tumor suppressor candidate 5 (TUSC5) was shown to be a novel GSV protein that underwent a 3.7-fold increase in abundance at the plasma membrane in response to insulin. siRNA-mediated knockdown of TUSC5 decreased insulin-stimulated glucose uptake, although overexpression of TUSC5 had the opposite effect, implicating TUSC5 as a positive regulator of insulin-stimulated glucose transport in adipocytes. Incubation of adipocytes with TNFα caused insulin resistance and a concomitant reduction in TUSC5. Consistent with previous studies, peroxisome proliferator-activated receptor (PPAR) γ agonism reversed TNFα-induced insulin resistance. TUSC5 expression was necessary but insufficient for PPARγ-mediated reversal of insulin resistance. These findings functionally link TUSC5 to GLUT4 trafficking, insulin action, insulin resistance, and PPARγ action in the adipocyte. Further studies are required to establish the exact role of TUSC5 in adipocytes.  相似文献   

13.
Insulin-responsive GLUT4 (glucose transporter 4) translocation plays a major role in regulating glucose uptake in adipose tissue and muscle. Whether or not there is a specialized secretory GSV (GLUT4 storage vesicle) pool, and more importantly how GSVs are translocated to the PM (plasma membrane) under insulin stimulation is still under debate. In the present study, we systematically analyzed the dynamics of a large number of single GLUT4-containing vesicles in 3T3-L1 adipocytes by TIRFM (total internal reflection fluorescence microscopy). We found that GLUT4-containing vesicles can be classified into three groups according to their mobility, namely vertical, stable, and lateral GLUT4-containing vesicles. Among these groups, vertical GLUT4-containing vesicles exclude transferrin receptors and move towards the PM specifically in response to insulin stimulation, while stable and lateral GLUT4-containing vesicles contain transferrin receptors and show no insulin responsiveness. These data demonstrate that vertical GLUT4-containing vesicles correspond to specialized secretory GSVs, which approach the PM directly and bypass the constitutive recycling pathway. Contributed equally to this work Supported by the National Natural Science Foundation of China (Grant Nos. 30470448 and 30130230), the National key Basic Research Program of China (Grant No. 2004CB720000), the Knowledge Innovative Program of The Chinese Academy of Sciences (Grant Nos. KSCX2-SW-224 and Y2004018), the Li Foundation and the Sinogerman Scientific Center.  相似文献   

14.
The trafficking of GLUT4, a facilitative glucose transporter, is examined in transfected CHO cells. In previous work, we expressed GLUT4 in neuroendocrine cells and fibroblasts and found that it was targeted to a population of small vesicles slightly larger than synaptic vesicles (Herman, G.A, F. Bonzelius, A.M. Cieutat, and R.B. Kelly. 1994. Proc. Natl. Acad. Sci. USA. 91: 12750–12754.). In this study, we demonstrate that at 37°C, GLUT4-containing small vesicles (GSVs) are detected after cell surface radiolabeling of GLUT4 whereas uptake of radioiodinated human transferrin does not show appreciable accumulation within these small vesicles. Immunofluorescence microscopy experiments show that at 37°C, cell surface–labeled GLUT4 as well as transferrin is internalized into peripheral and perinuclear structures. At 15°C, endocytosis of GLUT4 continues to occur at a slowed rate, but whereas fluorescently labeled GLUT4 is seen to accumulate within large peripheral endosomes, no perinuclear structures are labeled, and no radiolabeled GSVs are detectable. Shifting cells to 37°C after accumulating labeled GLUT4 at 15°C results in the reappearance of GLUT4 in perinuclear structures and GSV reformation. Cytosol acidification or treatment with hypertonic media containing sucrose prevents the exit of GLUT4 from peripheral endosomes as well as GSV formation, suggesting that coat proteins may be involved in the endocytic trafficking of GLUT4. In contrast, at 15°C, transferrin continues to traffic to perinuclear structures and overall labels structures similar in distribution to those observed at 37°C. Furthermore, treatment with hypertonic media has no apparent effect on transferrin trafficking from peripheral endosomes. Double-labeling experiments after the internalization of both transferrin and surface-labeled GLUT4 show that GLUT4 accumulates within peripheral compartments that exclude the transferrin receptor (TfR) at both 15° and 37°C. Thus, GLUT4 is sorted differently from the transferrin receptor as evidenced by the targeting of each protein to distinct early endosomal compartments and by the formation of GSVs. These results suggest that the sorting of GLUT4 from TfR may occur primarily at the level of the plasma membrane into distinct endosomes and that the organization of the endocytic system in CHO cells more closely resembles that of neuroendocrine cells than previously appreciated.  相似文献   

15.
The glucose transporter GLUT4 and the aminopeptidase IRAP (insulin-responsive aminopeptidase) are the major cargo proteins of GSVs (GLUT4 storage vesicles) in adipocytes and myocytes. In the basal state, most GSVs are sequestered in perinuclear and other cytosolic compartments. Following insulin stimulation, GSVs undergo exocytic translocation to insert GLUT4 and IRAP into the plasma membrane. The mechanisms regulating GSV trafficking are not fully defined. In the present study, using 3T3-L1 adipocytes transfected with siRNAs (small interfering RNAs), we show that insulin-stimulated IRAP translocation remained intact despite substantial GLUT4 knockdown. By contrast, insulin-stimulated GLUT4 translocation was impaired upon IRAP knockdown, indicating that IRAP plays a role in GSV trafficking. We also show that knockdown of tankyrase, a Golgi-associated IRAP-binding protein that co-localizes with perinuclear GSVs, attenuated insulin-stimulated GSV translocation and glucose uptake without disrupting insulin-induced phosphorylation cascades. Moreover, iodixanol density gradient analyses revealed that tankyrase knockdown altered the basal-state partitioning of GLUT4 and IRAP within endosomal compartments, apparently by shifting both proteins toward less buoyant compartments. Importantly, the afore-mentioned effects of tankyrase knockdown were reproduced by treating adipocytes with PJ34, a general PARP (poly-ADP-ribose polymerase) inhibitor that abrogated tankyrase-mediated protein modification known as poly-ADP-ribosylation. Collectively, these findings suggest that physiological GSV trafficking depends in part on the presence of IRAP in these vesicles, and that this process is regulated by tankyrase and probably its PARP activity.  相似文献   

16.
Insulin-regulated aminopeptidase (IRAP), a marker of glucose transporter 4 (GLUT4) storage vesicles (GSVs), is the only protein known to traffic with GLUT4. In the basal state, GSVs are sequestered from the constitutively recycling endosomal system to an insulin-responsive, intracellular pool. Insulin induces a rapid translocation of GSVs to the cell surface from this pool, resulting in the incorporation of IRAP and GLUT4 into the plasma membrane. We sought to identify proteins that interact with IRAP to further understand this GSV trafficking process. This study describes our identification of a novel interaction between the amino terminus of IRAP and the Akt substrate, AS160 (Akt substrate of 160 kDa). The validity of this interaction was confirmed by coimmunoprecipitation of both overexpressed and endogenous proteins. Moreover, confocal microscopy demonstrated colocalization of these proteins. In addition, we demonstrate that the IRAP-binding domain of AS160 falls within its second phosphotyrosine-binding domain and the interaction is not regulated by AS160 phosphorylation. We hypothesize that AS160 is localized to GLUT4-containing vesicles via its interaction with IRAP where it inhibits the activity of Rab substrates in its vicinity, effectively tethering the vesicles intracellularly.  相似文献   

17.
Insulin causes the exocytic translocation of GLUT4 glucose transporters to stimulate glucose uptake in fat and muscle. Previous results support a model in which TUG traps GLUT4 in intracellular, insulin-responsive vesicles termed GLUT4 storage vesicles (GSVs). Insulin triggers TUG cleavage to release the GSVs; GLUT4 then recycles through endosomes during ongoing insulin exposure. The TUG C terminus binds a GSV anchoring site comprising Golgin-160 and possibly other proteins. Here, we report that the TUG C terminus is acetylated. The TUG C-terminal peptide bound the Golgin-160-associated protein, ACBD3 (acyl-CoA-binding domain-containing 3), and acetylation reduced binding of TUG to ACBD3 but not to Golgin-160. Mutation of the acetylated residues impaired insulin-responsive GLUT4 trafficking in 3T3-L1 adipocytes. ACBD3 overexpression enhanced the translocation of GSV cargos, GLUT4 and insulin-regulated aminopeptidase (IRAP), and ACBD3 was required for intracellular retention of these cargos in unstimulated cells. Sirtuin 2 (SIRT2), a NAD+-dependent deacetylase, bound TUG and deacetylated the TUG peptide. SIRT2 overexpression reduced TUG acetylation and redistributed GLUT4 and IRAP to the plasma membrane in 3T3-L1 adipocytes. Mutation of the acetylated residues in TUG abrogated these effects. In mice, SIRT2 deletion increased TUG acetylation and proteolytic processing. During glucose tolerance tests, glucose disposal was enhanced in SIRT2 knock-out mice, compared with wild type controls, without any effect on insulin concentrations. Together, these data support a model in which TUG acetylation modulates its interaction with Golgi matrix proteins and is regulated by SIRT2. Moreover, acetylation of TUG enhances its function to trap GSVs within unstimulated cells and enhances insulin-stimulated glucose uptake.  相似文献   

18.
Insulin stimulates the translocation of intracellular GLUT4 to the plasma membrane where it functions in adipose and muscle tissue to clear glucose from circulation. The pathway and regulation of GLUT4 trafficking are complicated and incompletely understood and are likely to be contingent upon the various proteins other than GLUT4 that comprise and interact with GLUT4-containing vesicles. Moreover, not all GLUT4 intracellular pools are insulin-responsive as some represent precursor compartments, thus posing a biochemical challenge to the purification and characterization of their content. To address these issues, we immunodepleted precursor GLUT4-rich vesicles and then immunopurified GLUT4 storage vesicle (GSVs) from primary rat adipocytes and subjected them to semi-quantitative and quantitative proteomic analysis. The purified vesicles translocate to the cell surface almost completely in response to insulin, the expected behavior for bona fide GSVs. In total, over 100 proteins were identified, about 50 of which are novel in this experimental context. LRP1 (low density lipoprotein receptor-related protein 1) was identified as a major constituent of GSVs, and we show it interacts with the lumenal domains of GLUT4 and other GSV constituents. Its cytoplasmic tail interacts with the insulin-signaling pathway target, AS160 (Akt substrate of 160 kDa). Depletion of LRP1 from 3T3-L1 adipocytes reduces GLUT4 expression and correspondingly results in decreased insulin-stimulated 2-[3H]deoxyglucose uptake. Furthermore, adipose-specific LRP1 knock-out mice also exhibit decreased GLUT4 expression. These findings suggest LRP1 is an important component of GSVs, and its expression is needed for the formation of fully functional GSVs.  相似文献   

19.
Insulin-stimulated GLUT4 translocation to the plasma membrane constitutes a key process for blood glucose control. However, convenient and robust assays to monitor this dynamic process in real time are lacking, which hinders current progress toward elucidation of the underlying molecular events as well as screens for drugs targeting this particular pathway. Here, we have developed a novel dual colored probe to monitor the translocation process of GLUT4 based on dual color fluorescence measurement. We demonstrate that this probe is more than an order of magnitude more sensitive than the current technology for detecting fusion events from single GLUT4 storage vesicles (GSVs). A small fraction of fusion events were found to be of the "kiss-and-run" type. For the first time, we show that insulin stimulation evokes a approximately 40-fold increase in the fusion of GSVs in 3T3-L1 adipocytes, compared with basal conditions. The probe can also be used to monitor the prefusion behavior of GSVs. By quantifying both the docking and fusion rates simultaneously, we demonstrate a proportional inhibition in both docking and fusion of GSVs by a dominant negative mutant of AS160, indicating a role for AS160 in the docking of GSVs but not in the regulation of GSV fusion after docking.  相似文献   

20.
Rab proteins are important regulators of insulin-stimulated GLUT4 translocation to the plasma membrane (PM), but the precise steps in GLUT4 trafficking modulated by particular Rab proteins remain unclear. Here, we systematically investigate the involvement of Rab proteins in GLUT4 trafficking, focusing on Rab proteins directly mediating GLUT4 storage vesicle (GSV) delivery to the PM. Using dual-color total internal reflection fluorescence (TIRF) microscopy and an insulin-responsive aminopeptidase (IRAP)-pHluorin fusion assay, we demonstrated that Rab10 directly facilitated GSV translocation to and docking at the PM. Rab14 mediated GLUT4 delivery to the PM via endosomal compartments containing transferrin receptor (TfR), whereas Rab4A, Rab4B, and Rab8A recycled GLUT4 through the endosomal system. Myosin-Va associated with GSVs by interacting with Rab10, positioning peripherally recruited GSVs for ultimate fusion. Thus, multiple Rab proteins regulate the trafficking of GLUT4, with Rab10 coordinating with myosin-Va to mediate the final steps of insulin-stimulated GSV translocation to the PM.  相似文献   

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